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1.
Cell Calcium ; 120: 102883, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38643716

ABSTRACT

The basal and glucose-induced insulin secretion from pancreatic beta cells is a tightly regulated process that is triggered in a Ca2+-dependent fashion and further positively modulated by substances that raise intracellular levels of adenosine 3',5'-cyclic monophosphate (cAMP) or by certain antidiabetic drugs. In a previous study, we have temporally resolved the subplasmalemmal [Ca2+]i dynamics in beta cells that are characterized by trains of sharply delimited spikes, reaching peak values up to 5 µM. Applying total internal reflection fluorescence (TIRF) microscopy and synaptopHluorin to visualize fusion events of individual granules, we found that several fusion events can coincide within 50 to 150 ms. To test whether subplasmalemmal [Ca2+]i microdomains around single or clustered Ca2+ channels may cause a synchronized release of insulin-containing vesicles, we applied simultaneous dual-color TIRF microscopy and monitored Ca2+ fluctuations and exocytotic events in INS-1 cells at high frame rates. The results indicate that fusions can be triggered by subplasmalemmal Ca2+ spiking. This, however, does account for a minority of fusion events. About 90 %-95 % of fusion events either happen between Ca2+ spikes or incidentally overlap with subplasmalemmal Ca2+ spikes. We conclude that only a fraction of exocytotic events in glucose-induced and tolbutamide- or forskolin-enhanced insulin release from INS-1 cells is tightly coupled to Ca2+ microdomains around voltage-gated Ca2+ channels.


Subject(s)
Calcium , Exocytosis , Insulin-Secreting Cells , Insulin , Microscopy, Fluorescence , Insulin-Secreting Cells/metabolism , Calcium/metabolism , Animals , Rats , Insulin/metabolism , Exocytosis/drug effects , Calcium Signaling , Insulin Secretion/drug effects , Glucose/metabolism , Secretory Vesicles/metabolism
2.
Br J Pharmacol ; 179(24): 5290-5304, 2022 Dec.
Article in English | MEDLINE | ID: mdl-35916168

ABSTRACT

BACKGROUND AND PURPOSE: Ca2+ signalling mediated by the thermosensitive, non-selective, Ca2+ -permeable transient receptor potential channel TRPV3 is assumed to play a critical role in regulating several aspects of skin functions, such as keratinocyte proliferation, differentiation, skin barrier formation and wound healing. Studying the function of TRPV3 in skin homeostasis, however, is still constrained by a lack of potent and selective pharmacological modulators of TRPV3. EXPERIMENTAL APPROACH: By screening an in-house compound library using fluorometric intracellular Ca2+ assays, we identified two chemically related hits. The more potent and efficient TRPV3 activator 2-(2-chloro-3-isopropylcyclopent-2-en-1-yl)-4-methylphenol (KS0365) was further evaluated in fluo-4-assisted Ca2+ assays, different Ca2+ imaging approaches, electrophysiological studies, cytotoxicity and migration assays. KEY RESULTS: KS0365 activated recombinant and native mouse TRPV3 more potently and with a higher efficacy compared with 2-APB and did not activate TRPV2 or TRPV4 channels. The activation of TRPV3 by KS0365 super-additively accelerated the EGF-induced keratinocyte migration, which was inhibited by the TRP channel blocker ruthenium red or by siRNA-mediated TRPV3 knockdown. Moreover, KS0365 induced strong Ca2+ responses in migrating front cells and in leading edges of keratinocytes. CONCLUSIONS AND IMPLICATIONS: The selective TRPV3 activator KS0365 triggers increases in [Ca2+ ]i with most prominent signals in the leading edge and accelerates migration of keratinocytes. TRPV3 activators may promote re-epithelialization upon skin wounding.


Subject(s)
Keratinocytes , TRPV Cation Channels , Animals , Mice , Cell Differentiation , Cell Movement , Cell Proliferation , TRPV Cation Channels/agonists , TRPV Cation Channels/physiology , Wound Healing/physiology
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